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Updated: May 28, 2025

Spatio-Temporal Manipulation of Small GTPase Activity at Subcellular Level and on Timescale of Seconds in Living Cells
Published on: March 9, 2012
Photocontrol of the small GTPase Ras using its regulatory factor, GTPase-activating protein, modified with
Rajib Ahmed1, Nobuyuki Nishibe1, Ziyun Zhang1
1Department of Biosciences, Graduate School of Science and Engineering, Soka University, 1-236 Tangi-cho, Hachioji, Tokyo 192-8577, Japan.
Abstract:
Ras, a small GTPase, is central to the regulation of diverse cellular processes including transcription, cell cycle progression, growth, migration, cytoskeletal reorganization, apoptosis, cell survival and senescence. Ras activation is mediated by GTP binding, whereas its inactivation occurs via GDP binding, which is tightly controlled by guanine nucleotide exchange factors and GTPase-activating proteins (GAPs). GAPs accelerate GTP hydrolysis, playing a crucial role in modulating Ras signalling to prevent excessive or prolonged activation. Here, we investigated monofunctional azobenzene derivatives as photochromic modulators to control the function of Ras in a light-dependent and reversible manner. Three thiol-reactive azobenzene derivatives with distinct electrostatic properties were synthesized and incorporated into GAP functional sites to modulate Ras activity. GAP mutants containing a single cysteine residue at the functional site were generated using an Escherichia coli expression system. Our results showed that modifications near the GAP 'arginine finger', a critical region for stabilizing the GTP hydrolysis transition state of Ras, induced significant light-dependent changes in GTPase activity. We achieved photoreversible control of the interaction between Ras and its effector Raf using these azobenzene derivatives. These findings suggest that Ras function can be precisely modulated using photochromic molecules, providing a novel light-based approach for controlling Ras activity.
Insights
Scientists developed light-controlled molecules to precisely regulate Ras protein activity. This photochromic modulation offers a novel, reversible method for controlling cellular processes governed by Ras signaling.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Ras GTPase regulates critical cellular functions like transcription and cell survival.
- Guanine nucleotide exchange factors and GTPase-activating proteins (GAPs) control Ras activity by modulating GTP/GDP binding.
- GAPs are crucial for preventing excessive Ras signaling by accelerating GTP hydrolysis.
Purpose of the Study:
- To investigate azobenzene derivatives as photochromic modulators for light-dependent control of Ras function.
- To achieve reversible, light-induced modulation of Ras activity and its downstream effects.
Main Methods:
- Synthesis of three thiol-reactive azobenzene derivatives with varying electrostatic properties.
- Generation of GAP mutants with single cysteine residues at functional sites using E. coli expression.
- Incorporation of azobenzene derivatives into GAP functional sites to modulate Ras activity.
Main Results:
- Modifications near the GAP 'arginine finger' induced significant light-dependent changes in Ras GTPase activity.
- Demonstrated photoreversible control over the Ras-Raf effector interaction.
- Azobenzene derivatives successfully modulated Ras activity in a light-dependent manner.
Conclusions:
- Ras function can be precisely controlled using photochromic molecules.
- This study presents a novel light-based approach for modulating Ras signaling pathways.
- Azobenzene derivatives offer a tool for precise, reversible control of GTPase activity.
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